ASTM C1359-2011 Standard Test Method for Monotonic Tensile Strength Testing of Continuous Fiber-Reinforced Advanced Ceramics With Solid Rectangular Cross-Section Test Specimens at .pdf
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1、Designation: C1359 11Standard Test Method forMonotonic Tensile Strength Testing of Continuous Fiber-Reinforced Advanced Ceramics With Solid RectangularCross-Section Test Specimens at Elevated Temperatures1This standard is issued under the fixed designation C1359; the number immediately following the
2、 designation indicates the year oforiginal adoption or, in the case of revision, the year of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon () indicates an editorial change since the last revision or reapproval.1. Scope*1.1 This test method covers
3、the determination of tensilestrength including stress-strain behavior under monotonic uni-axial loading of continuous fiber-reinforced advanced ceramicsat elevated temperatures. This test method addresses, but is notrestricted to, various suggested test specimen geometries aslisted in the appendix.
4、In addition, test specimen fabricationmethods, testing modes (force, displacement, or strain control),testing rates (force rate, stress rate, displacement rate, or strainrate), allowable bending, temperature control, temperaturegradients, and data collection and reporting procedures areaddressed. Te
5、nsile strength as used in this test method refers tothe tensile strength obtained under monotonic uniaxial loadingwhere monotonic refers to a continuous nonstop test rate withno reversals from test initiation to final fracture.1.2 This test method applies primarily to advanced ceramicmatrix composit
6、es with continuous fiber reinforcement: uni-directional (1-D), bi-directional (2-D), and tri-directional (3-D)or other multi-directional reinforcements. In addition, this testmethod may also be used with glass (amorphous) matrixcomposites with 1-D, 2-D, 3-D and other multi-directionalcontinuous fibe
7、r reinforcements. This test method does notdirectly address discontinuous fiber-reinforced, whisker-reinforced, or particulate-reinforced ceramics, although the testmethods detailed here may be equally applicable to thesecomposites.1.3 The values stated in SI units are to be regarded as thestandard
8、and are in accordance with SI10-02 IEEE/ASTM SI10 .1.4 This standard does not purport to address all of thesafety concerns, if any, associated with its use. It is theresponsibility of the user of this standard to establish appro-priate safety and health practices and determine the applica-bility of
9、regulatory limitations prior to use. Refer to Section 7for specific precautions.2. Referenced Documents2.1 ASTM Standards:2C1145 Terminology of Advanced CeramicsD3878 Terminology for Composite MaterialsE4 Practices for Force Verification of Testing MachinesE6 Terminology Relating to Methods of Mecha
10、nical TestingE21 Test Methods for Elevated Temperature Tension Testsof Metallic MaterialsE83 Practice for Verification and Classification of Exten-someter SystemsE220 Test Method for Calibration of Thermocouples ByComparison TechniquesE337 Test Method for Measuring Humidity with a Psy-chrometer (the
11、 Measurement of Wet- and Dry-Bulb Tem-peratures)E1012 Practice for Verification of Test Frame and SpecimenAlignment Under Tensile and Compressive Axial ForceApplicationSI10-02 IEEE/ASTM SI 10 American National Standardfor Use of the International System of Units (SI): TheModern Metric System3. Termi
12、nology3.1 Definitions:3.1.1 Definitions of terms relating to tensile testing, ad-vanced ceramics, fiber-reinforced composites as they appear inTerminology E6, Terminology C1145, and TerminologyD3878, respectively, apply to the terms used in this testmethod. Pertinent definitions are shown in the fol
13、lowing withthe appropriate source given in parentheses. Additional termsused in conjunction with this test method are defined in 3.2.3.2 Definitions of Terms Specific to This Standard:3.2.1 advanced ceramic, nhighly engineered, high-performance predominately nonmetallic, inorganic, ceramicmaterial h
14、aving specific functional attributes. C11453.2.2 axial strain LL1, naverage longitudinal strainsmeasured at the surface on opposite sides of the longitudinal1This test method is under the jurisdiction of ASTM Committee C28 onAdvanced Ceramics and is the direct responsibility of Subcommittee C28.07 o
15、nCeramic Matrix Composites.Current edition approved July 15, 2011. Published August 2011. Originallyapproved in 1996. Last previous edition approved in 2005 as C1359 05. DOI:10.1520/C1359-11.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serv
16、iceastm.org. For Annual Book of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website.1*A Summary of Changes section appears at the end of this standard.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, Uni
17、ted States.axis of symmetry of the specimen by two strain-sensingdevices located at the mid length of the reduced section.E10123.2.3 bending strain LL1, ndifference between thestrain at the surface and the axial strain. In general, the bendingstrain varies from point to point around and along the re
18、ducedsection of the specimen. E10123.2.4 breaking force F, nforce at which fracture occurs.E63.2.5 ceramic matrix composite, nmaterial consisting oftwo or more materials (insoluble in one another), in which themajor, continuous component (matrix component) is a ceramic,while the secondary component(
19、s) (reinforcing component)may be ceramic, glass-ceramic, glass, metal, or organic innature. These components are combined on a macroscale toform a useful engineering material possessing certain proper-ties or behavior not possessed by the individual constituents.3.2.6 continuous fiber-reinforced cer
20、amic matrix composite(CFCC), nceramic matrix composite in which the reinforc-ing phase consists of a continuous fiber, continuous yarn, or awoven fabric.3.2.7 fracture strength FL2, ntensile stress that thematerial sustains at the instant of fracture. Fracture strength iscalculated from the force at
21、 fracture during a tension testcarried to rupture and the original cross-sectional area of thespecimen. E63.2.7.1 DiscussionIn some cases, the fracture strengthmay be identical to the tensile strength if the force at fractureis the maximum for the test.3.2.8 gage length L, noriginal length of that p
22、ortion ofthe specimen over which strain or change of length is deter-mined. E63.2.9 matrix-cracking stress FL2, napplied tensilestress at which the matrix cracks into a series of roughlyparallel blocks normal to the tensile stress.3.2.9.1 DiscussionIn some cases, the matrix crackingstress may be ind
23、icated on the stress-strain curve by deviationfrom linearity (proportional limit) or incremental drops in thestress with increasing strain. In other cases, especially withmaterials which do not possess a linear portion of the stress-strain curve, the matrix cracking stress may be indicated as thefir
24、st stress at which a permanent offset strain is detected in theunloading stress-strain (elastic limit) curve.3.2.10 modulus of elasticity FL2, nratio of stress tocorresponding strain below the proportional limit. E63.2.11 modulus of resilience FLL3, nstrain energy perunit volume required to elastica
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